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Daniel Toker

5 papers in the library · 379 citations · publishing 2021-2024

Papers

Consciousness among delta waves: a paradox?

Brain March 6, 2021 Joel Frohlich, Daniel Toker, Martin M. Monti 204 citations

High amplitude delta waves (1–4 Hz) in EEG have long been considered a marker of unconsciousness, observed during deep sleep, anesthesia, seizures, and disorders of consciousness. However, recent studies report prominent delta activity during conscious states, including Angelman syndrome, epilepsy, propofol anesthesia with behavioral responsiveness, postoperative delirium, dreaming, and psychedelic states. Older clinical reports also describe awake, conscious patients with high amplitude delta in Rett syndrome, Lennox-Gastaut syndrome, schizophrenia, mitochondrial diseases, hepatic encephalopathy, and non-convulsive status epilepticus.

Consciousness is supported by near-critical slow cortical electrodynamics.

Proc Natl Acad Sci U S A February 1, 2022 Daniel Toker, Ioannis Pappas, Janna D. Lendner et al. 148 citations

During conscious states, the cortex operates near a mathematically specific critical point called the edge-of-chaos, the boundary between stability and chaos. Applying a modified 0-1 chaos test to ECoG and MEG recordings from humans and macaques, evidence suggests that unconscious states—such as generalized seizure and anesthesia—involve a shift of low-frequency cortical oscillations away from this critical point, disrupting information processing. Psychedelic states tune these oscillations closer to the critical point, potentially increasing information richness. Analysis of clinical EEG from patients with disorders of consciousness indicates that measuring proximity to this critical point may serve as a clinical index of consciousness.

Criticality supports cross-frequency cortical-thalamic information transfer during conscious states.

eLife January 5, 2024 Daniel Toker, Eli Müller, Hiroyuki Miyamoto et al. 21 citations

Bidirectional communication between the cortex and thalamus via a specific cross-frequency channel is linked to conscious states. In humans, mice, and rats, low-frequency waves (1–13 Hz) sent from either the cortex or thalamus are consistently encoded by the other region using high gamma waves (52–104 Hz). This cross-frequency communication is diminished during propofol-induced unconsciousness and generalized spike-and-wave seizures, but enhanced by the psychedelic 5-MeO-DMT. Numerical simulations and neural recordings suggest these changes are mediated by shifts in thalamocortical electrodynamics toward or away from edge-of-chaos criticality, offering a mathematical framework for disrupted information transfer during unconsciousness.

Criticality supports cross-frequency cortical-thalamic information transfer during conscious states

bioRxiv Preprint Server February 22, 2023 Daniel Toker, Eli Müller, Hiroyuki Miyamoto et al. 3 citations preprint

Consciousness depends on bidirectional communication between the cortex and thalamus. A specific pattern of cross-frequency communication—low-frequency waves (1.5–13 Hz) from one region encoded as high gamma waves (50–100 Hz) in the other—is present during conscious states in humans, mice, and rats. This communication diminishes during propofol-induced anesthesia and generalized spike-and-wave seizures, but is enhanced by the psychedelic 5-MeO-DMT. Numerical simulations and neural recordings show that these changes are mediated by shifts in thalamocortical dynamics toward or away from edge-of-chaos criticality, the phase transition between stability and chaos. The findings offer a mathematically defined framework linking thalamic-cortical communication to consciousness.

Consciousness is supported by near-critical cortical electrodynamics

bioRxiv June 11, 2021 Daniel Toker, Ioannis Pappas, Janna D. Lendner et al. 3 citations preprint

During conscious states, the cortex's electrical activity operates near the edge-of-chaos critical point—the boundary between stability and chaos. Applying a new chaos test to ECoG and MEG recordings from humans and macaques across waking, seizure, anesthesia, and psychedelic states shows that unconsciousness shifts cortical dynamics away from this critical point, disrupting information processing. Psychedelics may enhance information-richness by tuning activity closer to this point. Analysis of EEG from patients with disorders of consciousness suggests that measuring proximity to the edge-of-chaos critical point could serve as a clinical biomarker of consciousness.